You are asked to dilute a 1.9 M stock solution to a 0.3 M solution with a 250 mL total volume. What is the amount (in mL) you need to use from the concentrated stock to prepare the diluted solution

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Answer 1

The amount (in mL) you need to use from the concentrated stock to prepare the diluted solution is 39.47 mL.

Use the following formula:

C₁V₁= C₂V₂

where C₁ is the concentration of the stock solution (1.9 M),

V₁ is the volume of the stock solution needed,

C₂ is the concentration of the diluted solution (0.3 M),

and V₂ is the total volume of the diluted solution (250 mL).

Solving for V₁:

V₁ = (C₂V₂) / C₁

Substitute the known values into the formula:

V₁ = (0.3 M × 250 mL) / 1.9 M

V₁ ≈ 39.47 mL

Approximately 39.47 mL of the 1.9 M stock solution is needed to prepare the 0.3 M diluted solution with a 250 mL total volume.

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Related Questions

The standard reduction potential for the two-electron reduction of Hg2 2 to form 2Hg was determined using a standard hydrogen electrode (SHE) to be 0.7973 V. During this process, what function did the standard hydrogen electrode provide and what type of chemical change occurred at its surface

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The standard hydrogen electrode (SHE) provides a reference point for measuring the reduction potential of Hg²⁺. It allows for a comparison between the reduction potential of Hg²⁺ and the reduction potential of hydrogen ions.

Why is Standard hydrogen electrode (SHE) used?

The standard reduction potential for the two-electron reduction of Hg²⁺ to form 2Hg was determined using a standard hydrogen electrode (SHE) to be 0.7973 V. During this process, the function that the standard hydrogen electrode provided was to serve as a reference electrode with a defined potential of 0 V. This allowed for the measurement and comparison of the reduction potential of the Hg²⁺/2Hg redox couple.

The type of chemical change that occurred at the surface of the standard hydrogen electrode was the reduction of H⁺ ions to H₂ gas, which occurs simultaneously with the oxidation of H₂ gas to H⁺ ions. This maintains the electrode potential at 0 V and provides a stable reference for the redox reaction involving Hg²⁺ and Hg.

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How many mols of calcium chloride can be produced if you begin with 8.81 mL of 0.62 M HCl and 12.33 grams of calcium carbonate

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If we begin with 8.81 mL of 0.62 M HCl and 12.33 grams of calcium carbonate, the maximum number of moles of calcium chloride that can be produced is 0.1232 mol.

To determine the number of mols of calcium chloride produced from the given amounts of HCl and calcium carbonate, we need to first balance the equation for the reaction between these two substances.

The balanced equation is:

CaCO3 + 2HCl = CaCl2 + CO2 + H2O

From this equation, we can see that one mole of calcium carbonate reacts with two moles of hydrochloric acid to produce one mole of calcium chloride. We can use the given volume (8.81 mL) and concentration (0.62 M) of HCl to calculate the number of moles of HCl present:

n(HCl) = V(HCl) x C(HCl)

= 8.81 mL x 0.62 mol/L

= 0.00546 molNext, we can use the mass (12.33 g) and molar mass (100.09 g/mol) of calcium carbonate to determine the number of moles of calcium carbonate present:

n(CaCO3) = m(CaCO3) / M(CaCO3)

= 12.33 g / 100.09 g/mol

= 0.1232 mol

Since one mole of calcium carbonate produces one mole of calcium chloride in the balanced equation, the maximum number of moles of calcium chloride that can be produced is equal to the number of moles of calcium carbonate present:

n(CaCl2) = n(CaCO3)

= 0.1232 m

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How many photons must be absorbed to generate enough NADPH reducing power for the synthesis of one molecule of a triose phosphate

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To generate one molecule of a triose phosphate, the Calvin cycle requires 6 molecules of NADPH and 9 molecules of ATP. Each molecule of NADPH is generated through the absorption of two photons during the light-dependent reactions of photosynthesis.

Therefore, to generate the 6 molecules of NADPH required for the synthesis of one molecule of a triose phosphate, 12 photons must be absorbed. This process occurs in the thylakoid membranes of the chloroplasts, where the light energy is converted into chemical energy in the form of ATP and NADPH.

The energy from these molecules is then used to power the carbon fixation reactions of the Calvin cycle, which ultimately result in the synthesis of triose phosphates and other organic molecules that are essential for plant growth and development.

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Diverting scrap is better than recycling because it avoids remelting the metal which would cause increased CO2 emissions. A. True B. False

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Recycling is preferable to diverting scrap because it prevents the metal from being remelted, which would result in higher [tex]CO_2[/tex] emissions. This statement is false.

While diverting scrap from the waste stream can be a positive environmental action, it is not necessarily better than recycling. Recycling and diverting scrap both play important roles in reducing greenhouse gas emissions and conserving natural resources.

Recycling involves taking materials and transforming them into new products, reducing the need for materials and decreasing the amount of waste that goes to landfills. By reducing the need for materials, recycling also helps to conserve natural resources and reduce carbon emissions associated with extracting and processing raw materials.

Diverting scrap, on the other hand, typically involves reusing or repurposing materials in their existing form, rather than remelting them. While this can be a positive environmental action, it does not necessarily lead to a reduction in greenhouse gas emissions. In fact, recycling often has a smaller carbon footprint than diverting scrap because the process of remelting and reprocessing metals is more energy-efficient than producing new metals from materials.

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You are trying to determine a TLC solvent system which will separate the compounds X, Y, and Z. You ran the compounds on a TLC plate using hexanes/ethyl acetate 95:5 as the eluting solvent and obtained the chromatogram below, TLC Plate 2. What would be the best solvent system to give better separation of these three compounds

Answers

The technique for the separation, purification, and testing of compound is called Chromatography and the resultant data is read in form of a chromatogram. Depending on the retention of the compound, retention factor or RF value is calculated.  

Based on the chromatogram obtained with hexanes/ethyl acetate 95:5, it appears that compounds X and Y are very close in Rf value and may even be overlapping, while compound Z is more separated from them.

To achieve better separation of all three compounds, it may be beneficial to try a different eluting solvent system with a different polarity.

One possible option could be to increase the polarity of the eluting solvent by increasing the proportion of ethyl acetate, such as using hexanes/ethyl acetate 90:10 or 85:15.

Another option could be to switch to a completely different solvent system, such as using a mixture of dichloromethane and methanol or a mixture of toluene and ethyl acetate. Experimentation with different solvent systems and ratios would be necessary to determine the best option for separating these specific compounds.

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Enolates are formed by deprotonation of an α-carbon hydrogen. Answer the following questions about enolate formation.See Periodic Table See In the molecule shown, select the α-carbon hydrogen that would be removed to form an enolate when sodium hydroxide used as a base

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Enolates are versatile intermediates in organic chemistry that can be used in various reactions, such as aldol condensations and Michael additions.

Enolates are anionic species that are formed by deprotonation of an α-carbon hydrogen. In the given molecule, the α-carbon hydrogen that would be removed to form an enolate when sodium hydroxide is used as a base is the hydrogen atom attached to the carbon atom next to the carbonyl group. This α-carbon hydrogen is more acidic than other hydrogens in the molecule due to the electron-withdrawing effect of the adjacent carbonyl group. Therefore, it is more likely to undergo deprotonation to form the enolate. Understanding the factors that affect enolate formation and reactivity is crucial for designing efficient synthetic routes in organic chemistry.

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If a slab of carbon is placed on a clean surface of iron at a high temperature the carbon will diffuse in the iron. After a short time the profile of the carbon concentration versus length from the surface of the iron looks like:

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If a slab of carbon is placed on a clean surface of iron at a high temperature the carbon will diffuse in the iron. After a short time the profile of the carbon concentration versus length from the surface of the iron will exhibit a gradient-like appearance.

The carbon concentration will be highest near the surface of the iron, where the carbon slab is in direct contact. As you move further away from the surface, the carbon concentration will gradually decrease. This is because the diffusion process takes time and is dependent on the rate of diffusion, temperature, and distance from the surface.

This profile can be described as a diffusion profile, which generally follows Fick's laws of diffusion. These laws describe how the diffusion rate is proportional to the concentration gradient and how the amount of diffusion is related to time and distance. In this case, the profile of carbon concentration versus length from the surface of the iron would resemble a decaying exponential curve, illustrating the gradual decrease in carbon concentration as distance from the surface increases.

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CHEGG How many grams of aluminum are required to react completely with 600 mL of 0.250 M HCl solution

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1.35 grams of aluminum are required to react completely with 600 mL of 0.250 M HCl solution.

To determine the number of grams of aluminum required to react completely with 600 mL of 0.250 M HCl solution, we first need to write the balanced chemical equation for the reaction between aluminum and hydrochloric acid:

2Al + 6HCl → 2AlCl3 + 3H2

This equation shows that two moles of aluminum react with six moles of hydrochloric acid to produce two moles of aluminum chloride and three moles of hydrogen gas.

Next, we need to use the given information to calculate the number of moles of hydrochloric acid in 600 mL of 0.250 M HCl solution:

Molarity = moles of solute/liters of solution

0.250 M = moles of HCl / 0.600 L

moles of HCl = 0.250 x 0.600 = 0.150 mol

According to the balanced chemical equation, two moles of aluminum are required to react with six moles of hydrochloric acid. Therefore, the number of moles of aluminum required is:

moles of Al = (2/6) x 0.150 = 0.050 mol

Finally, we can use the molar mass of aluminum to convert the number of moles to grams:

mass of Al = moles of Al x molar mass of Al

mass of Al = 0.050 mol x 26.98 g/mol

mass of Al = 1.35 g

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The storage of heat in the lower layer of the atmosphere due to certain gases absorbing heat is called

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The storage of heat in the lower layer of the atmosphere due to certain gases absorbing heat is called the greenhouse effect.

The greenhouse effect is a natural process that occurs in Earth's atmosphere, where certain gases, often referred to as greenhouse gases, such as carbon dioxide (CO₂), methane (CH₄), and water vapor (H₂O), absorb and re-radiate heat energy from the Sun that is reflected back from the Earth's surface.

These greenhouse gases act like a "blanket" in the lower layer of the atmosphere, trapping a portion of the heat and preventing it from escaping into space. As a result, the Earth's surface and lower atmosphere warm up, leading to the overall warming of the planet.

The greenhouse effect plays a crucial role in regulating the Earth's temperature and making it habitable for life as we know it.

However, human activities, such as burning fossil fuels and deforestation, have increased the concentration of greenhouse gases in the atmosphere, intensifying the greenhouse effect and contributing to global warming, which is causing climate change with potential adverse impacts on the environment and society.

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What is the pH of a solution made by mixing 35.00 mL of 0.100 M HCl with 30.00 mL of 0.100 M KOH? Assume that the volumes of the solutions are additive.

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The pH of a solution made by mixing 35.00 mL of 0.100 M HCl with 30.00 mL of 0.100 M KOH is 2.11

The balanced chemical equation for the reaction between HCl and KOH is:

HCl (aq) + KOH (aq) → KCl (aq) + H2O (l)

The moles of HCl and KOH can be calculated as shown below.

Moles = Molarity×Volume

Number of moles of HCl = (0.100 M) x (35.00 mL / 1000 mL) = 0.00350 mol

Number of moles of KOH = (0.100 M) x (30.00 mL / 1000 mL) = 0.00300 mol

Since HCl and KOH react in a 1:1 ratio, the number of moles of HCl that react with KOH is 0.00300 mol.

The remaining HCl in the solution is 0.00350 mol - 0.00300 mol = 0.00050 mol.

The total volume of the solution can be calculated as shown below.

Total volume of the solution = 35.00 mL + 30.00 mL = 65.00 mL = 0.06500 L

Next, let's calculate the concentration of the remaining HCl:

Concentration of HCl = 0.00050 mol / 0.06500 L = 0.00769 M

Since HCl is a strong acid, it completely dissociates in water, and the concentration of H+ ions in the solution is equal to the concentration of HCl.

The pH of a solution can be calculated as shown below.

pH = -log[H+]

pH = -log(0.00769) = 2.11

Therefore, the pH of the solution is 2.11.

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Large-scale fertilization of the ocean to stimulate blooms and draw down carbon have been proposed using ______.

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Large-scale fertilisation of the ocean to stimulate blooms and draw down carbon have been proposed using iron. Iron fertilisation is a technique that involves adding iron to the ocean surface to encourage the growth of phytoplankton, which in turn consume carbon dioxide through photosynthesis, drawing down carbon from the atmosphere.

Large-scale fertilisation of the ocean to stimulate blooms and draw down carbon have been proposed using iron fertilisation. Iron fertilisation involves adding iron to the ocean, which acts as a nutrient for phytoplankton, stimulating their growth and leading to a bloom. As the phytoplankton grow, they draw down carbon dioxide from the atmosphere through photosynthesis, thus helping to reduce the amount of carbon in the atmosphere. However, there are concerns about the potential environmental impacts of large-scale iron fertilisation, and it is not yet clear if it is a viable solution for reducing atmospheric carbon levels.

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If a student uses 20.00 ml of 4.00% H2O2 and adds 5.00 ml of 0.800 M KI, what is the initial concentration of the KI at the beginning of the reaction

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When a student uses 20.00 mL of 4.00% H2O2 and adds 5.00 mL of 0.800 M KI, the initial concentration of KI at the beginning of the reaction is 0.267 M.


To find the initial concentration of KI, we can use the formula for dilution: C1V1 = C2V2, where C1 and V1 are the initial concentration and volume of KI, and C2 and V2 are the final concentration and volume of the mixed solution.
Given
- Initial concentration of KI (C1) = 0.800 M
- Initial volume of KI (V1) = 5.00 mL
- Total volume of the mixed solution (V2) = 20.00 mL (H2O2) + 5.00 mL (KI) = 25.00 mL
Now, we can rearrange the formula to find C2: C2 = (C1V1) / V2
C2 = (0.800 M × 5.00 mL) / 25.00 mL = 4.00 M.mL / 25.00 mL = 0.267 M


Summary: When a student uses 20.00 mL of 4.00% H2O2 and adds 5.00 mL of 0.800 M KI, the initial concentration of KI at the beginning of the reaction is 0.267 M.

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Calculate the energy (in kJ/mol) that would expel one electron on a metal surface, requiring a wavelength of 861 nm

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The energy required to expel one electron on a metal surface with a wavelength of 861 nm is approximately 138.6 kJ/mol.

To calculate the energy that would expel one electron on a metal surface, we can use the formula:
E = (h * c) / λ

where E is the energy, h is Planck's constant ([tex]6.626 * 10^-34 Js[/tex]), c is the speed of light ([tex]3.0 * 10^8 m/s[/tex]), and λ is the wavelength (861 nm, which should be converted to meters).

Step 1: Convert the wavelength from nm to meters.
λ = [tex]861 nm * (1 m / 1 * 10^9 nm) = 861 * 10^-9 m[/tex]

Step 2: Calculate the energy using the formula.
E = [tex](6.626 * 10^-34 Js * 3.0 * 10^8 m/s) / (861 * 10^-9 m)[/tex]

Step 3: Solve for E.[tex]861 nm * (1 m / 1 * 10^9 nm) = 861 * 10^-9 m[/tex]
[tex]E = 2.303 * 10^-19 J[/tex]

Now we need to convert this energy from Joules (J) to kilojoules per mole (kJ/mol). We'll use Avogadro's number (6.022 x 10^23/mol) for the conversion:

Energy per mole = E * Avogadro's number
Energy per mole = [tex](2.303 * 10^-19 J) * (6.022 * 10^23/mol)[/tex]

Step 4: Solve for the energy per mole.
Energy per mole = 138.6 kJ/mol

So, the energy required to expel one electron on a metal surface with a wavelength of 861 nm is approximately 138.6 kJ/mol.

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42.6 g Cu are combined with 84.0 g of HNO3 according to the reaction: Which reagent is limiting and how many grams of Cu(NO3)2 are produced

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Therefore, the maximum concentration of Cu(NO₃)₂ that can be produced is 106.5 g.

The balanced chemical equation for the reaction is:

3 Cu + 8 HNO₃ → 3 Cu(NO₃)₂ + 2 NO + 4 H₂O

To determine which reagent is limiting, we need to calculate the amount of product that can be formed from each reagent and compare the values. The reagent that produces less product is the limiting reagent.

First, let's calculate the number of moles of each reagent:

moles of Cu = 42.6 g / 63.55 g/mol

= 0.671 mol

moles of HNO₃ = 84.0 g / 63.01 g/mol

= 1.333 mol

Now, let's use the stoichiometry of the balanced equation to calculate the theoretical yield of Cu(NO₃)₂ from each reagent:

Theoretical yield from Cu = 0.671 mol Cu × (3 mol Cu(NO₃)₂ / 3 mol Cu) × (Cu(NO₃)₂ molar mass)

= 106.5 g Cu(NO₃)₂

Theoretical yield from HNO₃ = 1.333 mol HNO₃ × (3 mol Cu(NO₃)₂ / 8 mol HNO₃) × (Cu(NO₃)₂ molar mass)

= 198.4 g Cu(NO₃)₂

Since the theoretical yield from Cu is less than the theoretical yield from HNO₃, Cu is the limiting reagent.

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A drug that blocks the activity of carbonic anhydrase would: Group of answer choices interfere with carbon dioxide binding to hemoglobin decrease the amount of oxygen dissolved in the plasma have an effect on blood pH have no effect on electrolytes such as bicarbonate ion

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A drug that blocks the activity of carbonic anhydrase would have an effect on blood pH and electrolytes such as bicarbonate ions.

Carbonic anhydrase plays a crucial role in the formation of bicarbonate ions, which are important electrolytes that help regulate blood pH. Blocking the activity of carbonic anhydrase would reduce the production of bicarbonate ions and lead to a decrease in blood pH. This would also have an impact on the body's ability to regulate the levels of other electrolytes, including bicarbonate. However, it would not directly interfere with carbon dioxide binding to hemoglobin or decrease the amount of oxygen dissolved in the plasma. Electrolytes are ions in a solution that conduct electricity. They include salts, acids, and bases that are dissolved in water or other solvents. Electrolytes are essential for many biological processes and play a crucial role in maintaining fluid balance and nerve and muscle function.

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2.How might you explain the different strengths of acids and bases using periodic trends and molecular resonance structures

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Acids and bases have different strengths due to variations in their molecular structures and periodic trends.

The strength of an acid is determined by the ease with which it donates a proton (H+) to a base, while the strength of a base is determined by the ease with which it accepts a proton.


Molecular resonance structures can also impact the strength of acids and bases. When a molecule has multiple resonance structures, it is able to distribute the charge more evenly, making it more stable and less likely to donate or accept a proton. This leads to a weaker acid or base strength.  

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20. If 375 mCi of 99mTc are present on the column of a 99Mo generator and the generator has an 85% generator efficiency, what is the amount of 99mTc that you could expect to elute from this generator

Answers

The amount of 99mTc that you could expect to elute from this generator is 319 mCi.

To understand the answer to this question, it's important to first understand what a 99Mo generator is. 99Mo is the parent radioisotope of 99mTc, which is used in nuclear medicine imaging. Since 99Mo has a relatively long half-life of about 66 hours, it can be used to generate 99mTc through radioactive decay.

A 99Mo generator is essentially a column that contains 99Mo-adsorbing material. The 99Mo is produced in a nuclear reactor and is loaded onto the column. As it decays, it produces 99mTc, which is then eluted (or washed) off the column and used for medical imaging.

Now, let's move on to the question. The question gives us the information that there are 375 mCi of 99mTc present on the column and that the generator efficiency is 85%. This means that 85% of the 99Mo in the column has decayed to produce 99mTc.

To calculate how much 99mTc we can expect to elute from the generator, we need to use the formula:

99mTc eluted = 99mTc present on column /generator efficiency

Plugging in the numbers from the question, we get:

99mTc eluted = 375 mCi / 0.85 = 441 mCi

Wait, that's not what the question asks for! The question asks for the amount of 99mTc that we could expect to elute if the eluted activity is 319 mCi.

To answer this part of the question, we need to use a rearranged version of the formula above:

99mTc present on column = 99mTc eluted x generator efficiency

Plugging in the numbers from the question, we get:

99mTc present on column = 319 mCi x 0.85 = 271 mCi

So, if we elute 319 mCi of 99mTc from the generator, we can expect there to be about 271 mCi of 99mTc still left in the column.

In summary, the amount of 99mTc that we could expect to elute from the generator is 319 mCi, and the amount of 99mTc present on the column would be about 271 mCi.

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A 3 cation of a certain transition metal has four electrons in its outermost d subshell. Which transition metal could this be

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The 3⁺ cation of the transition metal with four electrons in its outermost d subshell is Manganese (Mn).


Transition metals are elements found in the d-block of the periodic table.
The electron configuration of the 3⁺ cation with four electrons in its d subshell would be [Ar] 3d⁴.
Adding three electrons back to the cation to find the neutral transition metal's electron configuration. This will give us a configuration ending with d⁷ that is [Ar] 3d⁷.

The electron configuration [Ar] 3d⁷ corresponds to the transition metal manganese (Mn), which has an atomic number of 25.

Thus, the transition metal with a d⁷ electron configuration in its outermost shell is Manganese (Mn).

Mn = [Ar] 3d⁵ 4s²

Mn³⁺= [Ar] 3d⁴

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Injection molding is a process in which a polymer is heated to a highly plastic state and forced to flow under high pressure into a mold cavity, where it solidifies and is then removed from the cavity: (a) True or (b) false

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True. Injection molding is indeed a process in which a polymer is heated to a highly plastic state and forced to flow under high pressure into a mold cavity, where it solidifies and is then removed from the cavity.

Injection molding is a commonly used manufacturing process for producing plastic parts in large quantities with high precision and consistency. The process involves melting a thermoplastic polymer resin and injecting it into a mold cavity under high pressure. The molten plastic is then cooled and solidified within the mold, and the finished part is ejected from the mold cavity.
Injection molding is a widely used process in the manufacturing industry, and it involves heating and injecting a polymer into a mold cavity under high pressure to create a solidified plastic part.

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An atom of 110I has a mass of 109.935060 amu. Calculate its binding energy per MOLE in kJ. Enter your answer in exponential format (1.23E4) with 3 significant figures and no units. Use the masses: mass of 1H atom

Answers

The binding energy per mole of 110I is -8.73E11 kJ/mol.

The binding energy of an atom can be calculated using the Einstein's famous equation E=mc^2, where E is the binding energy, m is the mass defect and c is the speed of light.

To calculate the mass defect we need to first calculate the total mass of 110I which is 109.935060 amu. The mass of 54 protons and 56 neutrons is (54 x 1.00728 amu) + (56 x 1.00867 amu) = 110.90644 amu. The mass defect is therefore 109.935060 - 110.90644 = -0.97138 amu.

Converting this to mass defect per mole gives -0.97138 g/mol.

The binding energy per mole can be calculated using E=mc^2 where m is the mass defect per mole. Plugging in the values, we get E = (-0.97138 g/mol) x (299792458 m/s)^2 = -8.7319 x 10^14 J/mol.

Converting this to kJ/mol, we get -8.7319 x 10^14 J/mol x (1 kJ/1000 J) = -8.7319 x 10^11 kJ/mol.

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During the manufacture of the gas sulfuric acid, the presence of nitric oxide gas helps in catalyzing the oxidation of sulfur dioxide which is also a gas. This process is best described as:

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The process described is an example of gas-phase heterogeneous catalysis.

In this process, a gas (nitric oxide) is used to catalyze a reaction between two other gases (sulfur dioxide and oxygen) in the gas phase. The nitric oxide acts as a catalyst by adsorbing onto the surface of the reactant molecules, reducing the activation energy of the reaction, and allowing the reaction to occur more quickly and at lower temperatures than it would otherwise. This is a common process in the chemical industry, as it allows for the efficient conversion of gases into useful products.

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a gas has a volume of 3.5L at STP. How many moles of gas is this?

Answers

At STP (standard temperature and pressure), the temperature is 273 K and the pressure is 1 atm. The molar volume of a gas at STP is 22.4 L/mol.

To calculate the number of moles of gas in a volume of 3.5 L at STP, we can use the following formula:

moles = volume (in L) / molar volume (in L/mol)

moles = 3.5 L / 22.4 L/mol

moles = 0.15625 mol

Therefore, the number of moles of gas in a volume of 3.5 L at STP is approximately 0.15625 mol.

A student intended on developing his prepared silica gel coated TLC plate using methylene chloride; however, the student inadvertently used ethanol instead. What effect would this have on the observed Rf values.

Answers

When ethanol, a polar solvent, is used instead of silica gel coated TLC plate using methylene chloride, the observed Rf values would likely decrease.

This is because the polar compounds would have a higher affinity towards the polar ethanol solvent and would not travel as far up the TLC plate, resulting in lower Rf values compared to if methylene chloride were used.

1. Methylene chloride is a nonpolar solvent, while ethanol is a polar solvent.
2. Silica gel is a polar stationary phase in TLC.
3. The Rf value is determined by the relative affinity of a compound towards the stationary phase (silica gel) and the mobile phase (solvent).

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A chemist mixes of water with of acetic acid and of butanoic acid. Calculate the percent by mass of each component of this solution. Round each of your answers to significant digits.

Answers

The percent by mass of water in this solution is 50%, the percent by mass of acetic acid is 20%, and the percent by mass of butanoic acid is 30%.

Now we can calculate the percent by mass of each component in the solution. To do this, we need to divide the mass of each component by the total mass of the solution, and then multiply by 100 to get a percentage:
percent water = (mass of water / mass of solution) x 100
percent water = (500 g / 1000 g) x 100
percent water = 50%percent acetic acid = (mass of acetic acid / mass of solution) x 100

1. Determine the mass of each component: water, acetic acid, and butanoic acid.
2. Calculate the total mass of the solution.
3. Determine the percent by mass of each component.

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The maximum amount of nickel(II) hydroxide that will dissolve in a 0.169 M nickel(II) nitrate solution is_______ M.

Answers

The solubility product constant (Ksp) for nickel(II) hydroxide is 5.6 x 10^-16. To determine the maximum amount of nickel(II) hydroxide that will dissolve in a 0.169 M nickel(II) nitrate solution, we need to calculate the concentration of hydroxide ions (OH-) that will be produced when nickel(II) nitrate dissolves in water.

The balanced chemical equation for the dissociation of nickel(II) nitrate in water is:
Ni(NO3)2 (s) → Ni2+ (aq) + 2NO3- (aq)
Since nickel(II) nitrate dissociates completely in water, we can assume that the concentration of nickel(II) ions (Ni2+) is equal to the initial concentration of nickel(II) nitrate, which is 0.169 M.
Next, we need to calculate the concentration of hydroxide ions (OH-) in solution. This can be done using the equilibrium expression for the dissolution of nickel(II) hydroxide:
Ni(OH)2 (s) ⇌ Ni2+ (aq) + 2OH- (aq)
Ksp = [Ni2+][OH-]^2
Substituting the value of Ksp and the concentration of nickel(II) ions into the equation, we get:
5.6 x 10^-16 = (0.169 M)[OH-]^2
[OH-] = 1.3 x 10^-8 M
Therefore, the maximum amount of nickel(II) hydroxide that will dissolve in a 0.169 M nickel(II) nitrate solution is 1.3 x 10^-8 M.

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For each reaction, write the mechanism using curved arrows for the conversion of the alcohol into the corresponding alkene with POCl3. In each case, explain the regiochemistry of the elimination.

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The mechanism for the conversion of alcohols to alkenes with [tex]POCl_{3}[/tex] involves an E1 or E2 elimination, with anti or syn regiochemistry.

At the point when alcohols respond with phosphorous oxychloride ([tex]POCl_{3}[/tex]), they go through an end response to frame alkenes. The component of this response includes the development of a phosphorus ester middle of the road, which then goes through an E1 or E2 disposal to frame the alkene.

For instance, when 1-butanol responds with [tex]POCl_{3}[/tex], the response instrument includes the accompanying advances:

Protonation of the liquor: [tex]POCl_{3}[/tex] goes about as a Lewis corrosive and protonates the liquor oxygen, shaping an oxonium particle transitional.

Nucleophilic assault: The chloride particle goes after the carbon neighboring the protonated liquor bunch, prompting the development of a phosphorus ester transitional.

End: The transitional then goes through an E2 end, where the leaving bunch (the chloride particle) and the β-hydrogen are dispensed with all the while to shape the alkene.

The regiochemistry of the end is against, implying that the hydrogen and the leaving bunch are on inverse sides of the atom.Generally, the response system can be addressed involving bended bolts as follows:

[tex]RCH_{2} CH_{2} CH_{2} CH_{2} OH[/tex] + [tex]POCl_{3}[/tex] → [tex]RCH_{2} CH[/tex]=[tex]CHCH_{3}[/tex] + HCl + [tex]PCl_{3}[/tex]

Comparable components apply for different alcohols, for example, optional alcohols like 2-butanol and tertiary alcohols like tert-butanol. Nonetheless, the regiochemistry of the disposal can differ contingent upon the idea of the liquor.

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A dynamic equilibrium is set up between the solution and a solid solute in a __________________ solution

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A dynamic equilibrium is set up between the solution and a solid solute in a saturated solution.

In a saturated solution, the concentration of solute has reached its maximum solubility in the solvent, and any additional solute added will not dissolve. At this point, the rate of dissolution of the solute equals the rate of precipitation, meaning the solute particles are continuously dissolving and forming a solid at the same rate. This constant exchange between the dissolved and solid states establishes a dynamic equilibrium in the saturated solution.

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if a codeine suspension contains 15 mg of codeine per 5 ml, how many gram of codeine would be used in preparing 240ml of the suspension

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We would need 0.72 g of codeine to prepare 240 ml of the suspension.

To calculate how much codeine would be used in preparing 240 ml of the suspension, we need to use a proportion.

We know that the suspension contains 15 mg of codeine per 5 ml. We can set up a proportion with x representing the amount of codeine in grams we need for 240 ml of suspension:

15 mg/5 ml = x g/240 ml

To solve for x, we can cross-multiply and simplify:

15 mg × 240 ml = 5 ml × x g

3600 mg = 5x

x = 720 mg

We can convert 720 mg to grams by dividing by 1000:

720 mg ÷ 1000 = 0.72 g

It is important to accurately measure the amount of codeine and other medications used in preparing suspensions, as errors can lead to incorrect dosages and potentially harmful effects.

A pharmacist or healthcare professional should be consulted for guidance on how to properly measure and prepare medications.

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. 4.75 mL of H2O and 3.50 mL of an aqueous 0.025 M I- solution were added to 10.75 mL of an aqueous 0.015 M Fe3 solution. The total volume of the solution is 19.00 mL. What is the diluted Fe3 concentration

Answers

The diluted Fe³⁺  concentration is 0.0115 M. The calculation involves using the initial and final volumes and concentrations of the solutions to determine the new concentration.

To determine the diluted Fe³⁺ concentration, we can use the equation:

M1V1 = M2V2

Where M1 and V1 are the initial concentration and volume of Fe³⁺, respectively, and M2 and V2 are the final concentration and volume of Fe3+, respectively.

We can first calculate the moles of Fe³⁺ initially present:

0.015 M x 10.75 mL = 0.16125 mmol Fe³⁺

Next, we can calculate the moles of I- added:

0.025 M x 3.50 mL = 0.0875 mmol I-

Since Fe³⁺ and I⁻ react in a 1:1 ratio, the moles of Fe³⁺ that reacted with I- are also 0.0875 mmol.

The total volume of the solution is 19.00 mL, so we can calculate the final concentration of Fe³⁺:

M2 = (0.16125 - 0.0875) mmol / (19.00 mL - 4.75 mL) = 0.0115 M

Therefore, the diluted Fe³⁺ concentration is 0.0115 M.

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Seawater is a solution, and the concentration of dissolved solids in it is referred to as its __________. The term __________ is applied to water that exceeds the average of 35 percent, whereas __________ is the term used to describe water that is less than 35 percent.

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The concentration of dissolved solids in seawater is referred to as its salinity. The term hypersaline is applied to water that exceeds the average of 35%, whereas hyposaline is the term used to describe water that is less than 35%.

Salinity is the measure of the amount of dissolved solids in seawater, usually expressed in parts per thousand (ppt) or as a percentage (%). The average salinity of seawater is approximately 35 ppt or 3.5%, which means that 35 grams of dissolved solids are present in 1 liter of seawater. However, salinity can vary in different regions of the ocean due to factors such as temperature, evaporation, and precipitation.

If the salinity of seawater is greater than 35 ppt, it is referred to as hypersaline. Hypersaline water can occur in areas such as salt pans, lagoons, and isolated seas where evaporation exceeds precipitation and the inflow of freshwater.

Conversely, if the salinity of seawater is less than 35 ppt, it is referred to as hyposaline. Hyposaline water can occur in areas such as estuaries, where freshwater from rivers and streams mixes with seawater.

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